Q.(i) What are the reasons for the anomalous properties of Beryllium?
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Start your 14-day free trial to unlock the full solution →Beryllium's unusually small size and high charge density make it behave differently from the rest of Group 2 — it forms mostly covalent compounds, shows a coordination number of only 4, and does not react with water — a set of anomalies that together constitute its diagonal relationship with aluminium.
(This question offered an OR alternative on the characteristics of internal energy; the primary parts (i) and (ii) on beryllium below are answered.)
(i) Reasons for the anomalous properties of beryllium:
- Very small atomic and ionic size compared to the rest of the group (the smallest in Group 2).
- Very high ionization enthalpy — beryllium's small size means its valence electrons are held tightly, so a true Be2+ ion essentially does not form in ordinary chemical reactions; instead beryllium forms largely covalent bonds.
- High electronegativity relative to the other alkaline earth metals, again a consequence of its small size.
- Absence of d orbitals in its valence shell, which limits its maximum coordination number to 4 (using sp3 hybrid orbitals), unlike the heavier members which can expand their coordination number to 6.
- Very high polarizing power (charge/size ratio) — a small, highly charged Be2+ centre strongly polarizes the electron cloud of any anion near it, favouring covalent character (Fajans' rules).
These factors together also give beryllium a diagonal relationship with aluminium (Group 13), since both have similarly high charge densities.
(ii) Three properties of beryllium different from the rest of the group: …
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